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TSEK02 Radio Electronics, HT2 2017 1(8) Integrated Circuits and Systems http://www.ics.isy.liu.se/en/ TSEK02 – Radio Electronics Tutorial 6 Exam solving By Morteza Abbasi and Ameya Bihde 2013 2016-12-11 Updated by Ted Johansson (ted.johansson@liu.se)
TSEK02 Radio Electronics, HT2 2017 2(8)
TSEK02 Radio Electronics, HT2 2017 3(8) The exam has 100 points in total and your grade will be decided according to the following limits: >85 5 >70 4 >55 3 (other limits may be used for other exams.) Use the appendix containing the list of important formulae provided at the end of this exam paper. Pay extra attention to units and conversions between dB and linear scale. 1. Compare QPSK, 16-QAM and 64-QAM modulation schemes in terms of their: a) Constellation Diagrams. (6 p) b) Bandwidth Efficiency. (4 p) c) Peak power required in order to have the same symbol error probabilities. (10 p) 2. The heterodyne transmitter shown in the figure below uses a band pass filter (BPF) at the output of the second up-conversion mixer to remove the undesired lower sideband. The band pass filter characteristics are also shown below. If the carrier frequency is 1 GHz and the intermediate frequency (IF) is 200 MHz. a) Calculate the frequency of the local oscillator, FLO. (5 p) b) Calculate the filter order required to achieve a sideband rejection of 50 dB. (10 p) c) It turns out that the maximum filter order available in the laboratory is only 4. How should the frequency plan of this transmitter now be redesigned? (10 p) The bandwidth of the baseband can be neglected and assumed to be very narrow. Baseband IF Mixer RF Mixer BPF Antenna FLO 0 dB Attn = 20N dB/ decade Centre Frequency,Fc Magnitude (dB) Frequency (log scale)
TSEK02 Radio Electronics, HT2 2017 4(8) 3. A point-to-point wireless transmission system should operate over 1 km at 5.8 GHz with 100 Mb/s and QPSK modulation. Raised cosine pulses with 𝛼 = 0.35 are used. The transmitter can provide 22 dBm power and the antenna on both transmitter and receiver sides have gains of 2 dB. What should the noise figure of the receiver be if the minimum required SNR at its output is 8 dB? (Ignore any fading effect of the channel) (20 p) 4. A heterodyne receiver system operates over the frequency band of 15.3 - 15.7 GHz with four channels and an IF of 1 GHz. Specify different LO frequencies for reception of different channels and the corresponding image frequencies. What would the fractional bandwidth of the channel selection filter be? (15 p) 5. A transmitter system is configured as shown below a) Calculate the output third order intercept point of the transmitter (10 p) After manufacturing it has been realized that this value is 2 dB less than the requirements. In order to avoid any re-design, an additional linear amplifier with 20 dB of gain is added to the output and the input signal will be reduced accordingly. b) How much should the OIP3 of the amplifier be so that the transmitter meets the linearity requirements? (10 p) Modulated Signal gain= 10 dB OIP3=10 dBm Loss=0.5 dB gain= 25 dB OIP3=28 dBm gain= 6 dB OIP3=5 dBm
TSEK02 Radio Electronics, HT2 2017 5(8) Solutions The exact numerical results are very sensitive to rounding errors and some deviation in the numbers is tolerated and still give full points for the answer! The important is that the examiner is able to follow your calculations and thoughts! 1. Check Tutorial 1, Problem 1.3 2. Similar (but not identical) to Tutorial 1, Problem 1.5 a) fC = fLO +/- fIF fC = 1 GHz, fIF = 200 MHz We filter the lower sideband and use the upper sideband. fLO = 800 MHz. b) Image is 2* fIF away at 600 MHz. The numbers of decades is ABS((fC - 2 fIF) / fC) This is ABS(log(600 MHz/1 GHz)) decades = 0.22 decades. The required attenuation is 50 dB = 20N *0.22 dB => N=11.27 -> 12. c) Max order is 4. We keep fC but change fIF. ABS(log((fC - 2 fIF) / fC)) * 20 * 4 = 50 => fIF = 381 MHz. 3. We use Friis' transmission formula. λ = C f = 3×108 5.8×109 = 0.05172m Convert transmit power and antenna gains into linear scale. The power reaching the receiver input is PRX = PTX Gant 2 ×λ2 (4πR)2 = 6.7448 × 10−12 W With QPSK modulation each symbol represents two bits so the symbol rate is Rs=Rb/2=50 Msym/sec Bandwidth of the signal is Rs(1+) = 50M(1+0.35) = 67.5 MHz. Psen (Pmin) = -174 dBm/Hz + 10log(B) + NF + SNRout. B = 67.5E6, SNRout = 8 dB, Pmin = 6.7448E-12 W = -81.71 dBm => NF = 5.9967 dB = 6.0 dB.
TSEK02 Radio Electronics, HT2 2017 6(8) 4. The frequency band is divided into 4 channels. Bandwidth of each channel is B =(15.7-15.3)/4 = 0.1 GHz Center frequencies of these channels are therefore [15.35 GHz, 15.45 GHz, 15.55 GHz, 15.65 GHz]. With 1 GHz IF, LO frequencies could be either [16.35 GHz, 16.45 GHz, 16.55 GHz, 16.65 GHz] or [14.35 GHz, 14.45 GHz, 14.55 GHz, 14.65 GHz] and image frequencies are either [17.35 GHz, 17.45 GHz, 17.55 GHz, 17.65 GHz] or [13.35 GHz, 13.45 GHz, 13.55 GHz, 13.65 GHz], respectively. Fractional bandwidth of the channel select filter should be B f = 0.1 1 = 10 %. 5. a) The output IP3 of the transmitter is calculated to 357 mW = 25.5 dBm. (No OIP3 given for the filter with loss=0.5 dB, therefore assume OIP3 of this block to be very large, use e.g. OIP3 = 100 dBm in the calculations). Here is a calculation in matlab, so it is easy to track where the values come from and less risk of rounding errors: b) The required OIP3 has been 27.5 dBm = 562 mW. The final OIP3 with the new amplifier is 1 OIP3new = 1 Gamp×OIP3old + 1 OIP3amp so OIP3 of the amplifier should be OIP3amp = 1/ ( 1 562 − 1 100×357 ) = 570 mW = 27.6 dBm. (Did not use the exact numerical values from a) in this calculation, just three digits as shown.)
TSEK02 Radio Electronics, HT2 2017 7(8) Important Note: Always watch out for the scale. Check whether you are in dB scale or the linear scale. This is a very common mistake. List of Important Formulae 1. Shannon’s Channel Capacity Theorem 𝐶 = 𝐵 × log2(1 + 𝑆𝑁𝑅) = 𝐵 × log2 (1 + 𝑆 𝑛0 × 𝐵 ) [𝑏 𝑠 ⁄ ] n0 is the noise power spectral density in W/Hz, S is the signal power in W, B is the bandwidth, SNR is NOT in dB scale. Also note the log2 which is not the common log10. 2. Bandwidth of a signal shaped by a raised cosine pulse filter is 1+𝛼 𝑇𝑏 α is the roll-off factor, Tb is the original pulse period. 3. Boltzmann’s Constant, k = 1.38 x 10-23 J/K. 4. Use a room temperature of 27 °C = 300 K whenever temperature is not specified. 5. Thermal noise power spectral density, PSD=kT. At T=300 K, PSD is -174 dBm/Hz. The PSD is independent of the resistor value. This is true only when the source resistor and the load resistances are matched. 6. Thermal noise power in a bandwidth B: PRS = kTB. In dB scale at 300 K, the total thermal noise power PRS|dB = 10log(kTB) = 10log(kT)+10logB => PRS|dB = -174 dBm/Hz + 10logB 7. Noise Factor [not in dB] out in SNR SNR NF  Noise Figure [dB]          out in dB SNR SNR NF log 10 = SNRin|dB -SNRout|dB 8. Noise figure of a passive lossy component is equal to its loss: NF=L. 9. Effective noise figure of cascaded stages. A B C GA, NFA GB, NFB GC, NFC B A C A B A total G G NF G NF NF NF 1 1      . This is called Friis’ equation. This equation is not in dB. 10. IP3 = P1db + 9.6. in dBm and valid for both input and output referred quantities
TSEK02 Radio Electronics, HT2 2017 8(8) 11. Output IP3 of a component can also be calculated from the two-tone test: 𝑂𝐼𝑃3 [𝑑𝐵𝑚] = 𝑃1[𝑑𝐵𝑚] + ∆𝑃[𝑑𝐵𝑐] 2 where P1 is the power of each of the main tones, ∆𝑃 is the power difference between the two tones and the distortion tones. 12. IP3 = P + ΔP/2. in dBm and valid for both input and output referred quantities. P is the input/output power in each of the main tones, ΔP is the power difference between the main tones and the distortion tones 13. IP3 of cascaded stages: A B C Effective IIP3 (in W, not in dBm/dB) C B A B A A total IIP G G IIP G IIP IIP 3 3 3 1 3 1    , where G is the gain. If referred to the output, OIP3 becomes C B C A C B total OIP OIP G OIP G G OIP 3 1 3 1 3 1 3 1      14. At 300 K, the power required at the receiver input in dBm for a given output SNR in a bandwidth B is given by Pin|dBm =-174 dBm/Hz+10log(B)+NFdB +SNRout|dB. . 15. Dynamic Range Linear (referenced to input) in dB: DRL= P1dB(referenced to input) - Psen. 16. Spurious Free Dynamic Range, SFDR (referenced to input) in dB: SFDR = 2 PIIP3 +174 dBm/Hz - NF -10logB ( ) 3 - SNRmin This formula assumes that the input noise is thermal at 300 K. 17. After propagation through an ideal channel of R meters, the received power level is given by 𝑃𝑟𝑒𝑐𝑒𝑖𝑣𝑒 = 𝑃𝑡𝑟𝑎𝑛𝑠𝑚𝑖𝑡 × 𝐺𝑡 × 𝐺𝑟 × 𝜆2 (4𝜋𝑅)2 𝐺𝑅 and 𝐺𝑇 are receive and transmit antenna gains and 𝜆 is the wavelength given by 𝜆 = 𝑐 𝑓 , where c=3*108 m/s.

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  • 1. TSEK02 Radio Electronics, HT2 2017 1(8) Integrated Circuits and Systems http://www.ics.isy.liu.se/en/ TSEK02 – Radio Electronics Tutorial 6 Exam solving By Morteza Abbasi and Ameya Bihde 2013 2016-12-11 Updated by Ted Johansson (ted.johansson@liu.se)
  • 3. TSEK02 Radio Electronics, HT2 2017 3(8) The exam has 100 points in total and your grade will be decided according to the following limits: >85 5 >70 4 >55 3 (other limits may be used for other exams.) Use the appendix containing the list of important formulae provided at the end of this exam paper. Pay extra attention to units and conversions between dB and linear scale. 1. Compare QPSK, 16-QAM and 64-QAM modulation schemes in terms of their: a) Constellation Diagrams. (6 p) b) Bandwidth Efficiency. (4 p) c) Peak power required in order to have the same symbol error probabilities. (10 p) 2. The heterodyne transmitter shown in the figure below uses a band pass filter (BPF) at the output of the second up-conversion mixer to remove the undesired lower sideband. The band pass filter characteristics are also shown below. If the carrier frequency is 1 GHz and the intermediate frequency (IF) is 200 MHz. a) Calculate the frequency of the local oscillator, FLO. (5 p) b) Calculate the filter order required to achieve a sideband rejection of 50 dB. (10 p) c) It turns out that the maximum filter order available in the laboratory is only 4. How should the frequency plan of this transmitter now be redesigned? (10 p) The bandwidth of the baseband can be neglected and assumed to be very narrow. Baseband IF Mixer RF Mixer BPF Antenna FLO 0 dB Attn = 20N dB/ decade Centre Frequency,Fc Magnitude (dB) Frequency (log scale)
  • 4. TSEK02 Radio Electronics, HT2 2017 4(8) 3. A point-to-point wireless transmission system should operate over 1 km at 5.8 GHz with 100 Mb/s and QPSK modulation. Raised cosine pulses with 𝛼 = 0.35 are used. The transmitter can provide 22 dBm power and the antenna on both transmitter and receiver sides have gains of 2 dB. What should the noise figure of the receiver be if the minimum required SNR at its output is 8 dB? (Ignore any fading effect of the channel) (20 p) 4. A heterodyne receiver system operates over the frequency band of 15.3 - 15.7 GHz with four channels and an IF of 1 GHz. Specify different LO frequencies for reception of different channels and the corresponding image frequencies. What would the fractional bandwidth of the channel selection filter be? (15 p) 5. A transmitter system is configured as shown below a) Calculate the output third order intercept point of the transmitter (10 p) After manufacturing it has been realized that this value is 2 dB less than the requirements. In order to avoid any re-design, an additional linear amplifier with 20 dB of gain is added to the output and the input signal will be reduced accordingly. b) How much should the OIP3 of the amplifier be so that the transmitter meets the linearity requirements? (10 p) Modulated Signal gain= 10 dB OIP3=10 dBm Loss=0.5 dB gain= 25 dB OIP3=28 dBm gain= 6 dB OIP3=5 dBm
  • 5. TSEK02 Radio Electronics, HT2 2017 5(8) Solutions The exact numerical results are very sensitive to rounding errors and some deviation in the numbers is tolerated and still give full points for the answer! The important is that the examiner is able to follow your calculations and thoughts! 1. Check Tutorial 1, Problem 1.3 2. Similar (but not identical) to Tutorial 1, Problem 1.5 a) fC = fLO +/- fIF fC = 1 GHz, fIF = 200 MHz We filter the lower sideband and use the upper sideband. fLO = 800 MHz. b) Image is 2* fIF away at 600 MHz. The numbers of decades is ABS((fC - 2 fIF) / fC) This is ABS(log(600 MHz/1 GHz)) decades = 0.22 decades. The required attenuation is 50 dB = 20N *0.22 dB => N=11.27 -> 12. c) Max order is 4. We keep fC but change fIF. ABS(log((fC - 2 fIF) / fC)) * 20 * 4 = 50 => fIF = 381 MHz. 3. We use Friis' transmission formula. λ = C f = 3×108 5.8×109 = 0.05172m Convert transmit power and antenna gains into linear scale. The power reaching the receiver input is PRX = PTX Gant 2 ×λ2 (4πR)2 = 6.7448 × 10−12 W With QPSK modulation each symbol represents two bits so the symbol rate is Rs=Rb/2=50 Msym/sec Bandwidth of the signal is Rs(1+) = 50M(1+0.35) = 67.5 MHz. Psen (Pmin) = -174 dBm/Hz + 10log(B) + NF + SNRout. B = 67.5E6, SNRout = 8 dB, Pmin = 6.7448E-12 W = -81.71 dBm => NF = 5.9967 dB = 6.0 dB.
  • 6. TSEK02 Radio Electronics, HT2 2017 6(8) 4. The frequency band is divided into 4 channels. Bandwidth of each channel is B =(15.7-15.3)/4 = 0.1 GHz Center frequencies of these channels are therefore [15.35 GHz, 15.45 GHz, 15.55 GHz, 15.65 GHz]. With 1 GHz IF, LO frequencies could be either [16.35 GHz, 16.45 GHz, 16.55 GHz, 16.65 GHz] or [14.35 GHz, 14.45 GHz, 14.55 GHz, 14.65 GHz] and image frequencies are either [17.35 GHz, 17.45 GHz, 17.55 GHz, 17.65 GHz] or [13.35 GHz, 13.45 GHz, 13.55 GHz, 13.65 GHz], respectively. Fractional bandwidth of the channel select filter should be B f = 0.1 1 = 10 %. 5. a) The output IP3 of the transmitter is calculated to 357 mW = 25.5 dBm. (No OIP3 given for the filter with loss=0.5 dB, therefore assume OIP3 of this block to be very large, use e.g. OIP3 = 100 dBm in the calculations). Here is a calculation in matlab, so it is easy to track where the values come from and less risk of rounding errors: b) The required OIP3 has been 27.5 dBm = 562 mW. The final OIP3 with the new amplifier is 1 OIP3new = 1 Gamp×OIP3old + 1 OIP3amp so OIP3 of the amplifier should be OIP3amp = 1/ ( 1 562 − 1 100×357 ) = 570 mW = 27.6 dBm. (Did not use the exact numerical values from a) in this calculation, just three digits as shown.)
  • 7. TSEK02 Radio Electronics, HT2 2017 7(8) Important Note: Always watch out for the scale. Check whether you are in dB scale or the linear scale. This is a very common mistake. List of Important Formulae 1. Shannon’s Channel Capacity Theorem 𝐶 = 𝐵 × log2(1 + 𝑆𝑁𝑅) = 𝐵 × log2 (1 + 𝑆 𝑛0 × 𝐵 ) [𝑏 𝑠 ⁄ ] n0 is the noise power spectral density in W/Hz, S is the signal power in W, B is the bandwidth, SNR is NOT in dB scale. Also note the log2 which is not the common log10. 2. Bandwidth of a signal shaped by a raised cosine pulse filter is 1+𝛼 𝑇𝑏 α is the roll-off factor, Tb is the original pulse period. 3. Boltzmann’s Constant, k = 1.38 x 10-23 J/K. 4. Use a room temperature of 27 °C = 300 K whenever temperature is not specified. 5. Thermal noise power spectral density, PSD=kT. At T=300 K, PSD is -174 dBm/Hz. The PSD is independent of the resistor value. This is true only when the source resistor and the load resistances are matched. 6. Thermal noise power in a bandwidth B: PRS = kTB. In dB scale at 300 K, the total thermal noise power PRS|dB = 10log(kTB) = 10log(kT)+10logB => PRS|dB = -174 dBm/Hz + 10logB 7. Noise Factor [not in dB] out in SNR SNR NF  Noise Figure [dB]          out in dB SNR SNR NF log 10 = SNRin|dB -SNRout|dB 8. Noise figure of a passive lossy component is equal to its loss: NF=L. 9. Effective noise figure of cascaded stages. A B C GA, NFA GB, NFB GC, NFC B A C A B A total G G NF G NF NF NF 1 1      . This is called Friis’ equation. This equation is not in dB. 10. IP3 = P1db + 9.6. in dBm and valid for both input and output referred quantities
  • 8. TSEK02 Radio Electronics, HT2 2017 8(8) 11. Output IP3 of a component can also be calculated from the two-tone test: 𝑂𝐼𝑃3 [𝑑𝐵𝑚] = 𝑃1[𝑑𝐵𝑚] + ∆𝑃[𝑑𝐵𝑐] 2 where P1 is the power of each of the main tones, ∆𝑃 is the power difference between the two tones and the distortion tones. 12. IP3 = P + ΔP/2. in dBm and valid for both input and output referred quantities. P is the input/output power in each of the main tones, ΔP is the power difference between the main tones and the distortion tones 13. IP3 of cascaded stages: A B C Effective IIP3 (in W, not in dBm/dB) C B A B A A total IIP G G IIP G IIP IIP 3 3 3 1 3 1    , where G is the gain. If referred to the output, OIP3 becomes C B C A C B total OIP OIP G OIP G G OIP 3 1 3 1 3 1 3 1      14. At 300 K, the power required at the receiver input in dBm for a given output SNR in a bandwidth B is given by Pin|dBm =-174 dBm/Hz+10log(B)+NFdB +SNRout|dB. . 15. Dynamic Range Linear (referenced to input) in dB: DRL= P1dB(referenced to input) - Psen. 16. Spurious Free Dynamic Range, SFDR (referenced to input) in dB: SFDR = 2 PIIP3 +174 dBm/Hz - NF -10logB ( ) 3 - SNRmin This formula assumes that the input noise is thermal at 300 K. 17. After propagation through an ideal channel of R meters, the received power level is given by 𝑃𝑟𝑒𝑐𝑒𝑖𝑣𝑒 = 𝑃𝑡𝑟𝑎𝑛𝑠𝑚𝑖𝑡 × 𝐺𝑡 × 𝐺𝑟 × 𝜆2 (4𝜋𝑅)2 𝐺𝑅 and 𝐺𝑇 are receive and transmit antenna gains and 𝜆 is the wavelength given by 𝜆 = 𝑐 𝑓 , where c=3*108 m/s.